WO2000020350A1 - Cementing compositions and the use of such compositions for cementing oil wells or the like - Google Patents

Cementing compositions and the use of such compositions for cementing oil wells or the like Download PDF

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Publication number
WO2000020350A1
WO2000020350A1 PCT/EP1999/007789 EP9907789W WO0020350A1 WO 2000020350 A1 WO2000020350 A1 WO 2000020350A1 EP 9907789 W EP9907789 W EP 9907789W WO 0020350 A1 WO0020350 A1 WO 0020350A1
Authority
WO
WIPO (PCT)
Prior art keywords
cement
cementing
rubber particles
modulus
compositions
Prior art date
Application number
PCT/EP1999/007789
Other languages
English (en)
French (fr)
Inventor
Sylvaine Le Roy-Delage
Bernard Dargaud
Jean-François Baret
Marc Thiercelin
Original Assignee
Sofitech N.V.
Schlumberger Canada Limited
Compagnie Des Services Dowell Schlumberger
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Sofitech N.V., Schlumberger Canada Limited, Compagnie Des Services Dowell Schlumberger filed Critical Sofitech N.V.
Priority to JP2000574473A priority Critical patent/JP4017823B2/ja
Priority to AU64725/99A priority patent/AU6472599A/en
Priority to AT99952578T priority patent/ATE228104T1/de
Priority to DE69904076T priority patent/DE69904076D1/de
Priority to CA 2346169 priority patent/CA2346169C/en
Priority to EP19990952578 priority patent/EP1129047B1/en
Publication of WO2000020350A1 publication Critical patent/WO2000020350A1/en
Priority to NO20011688A priority patent/NO324622B1/no
Priority to US10/621,083 priority patent/US6907929B2/en

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C04CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
    • C04BLIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
    • C04B18/00Use of agglomerated or waste materials or refuse as fillers for mortars, concrete or artificial stone; Treatment of agglomerated or waste materials or refuse, specially adapted to enhance their filling properties in mortars, concrete or artificial stone
    • C04B18/04Waste materials; Refuse
    • C04B18/18Waste materials; Refuse organic
    • C04B18/20Waste materials; Refuse organic from macromolecular compounds
    • C04B18/22Rubber, e.g. ground waste tires
    • CCHEMISTRY; METALLURGY
    • C04CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
    • C04BLIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
    • C04B28/00Compositions of mortars, concrete or artificial stone, containing inorganic binders or the reaction product of an inorganic and an organic binder, e.g. polycarboxylate cements
    • C04B28/02Compositions of mortars, concrete or artificial stone, containing inorganic binders or the reaction product of an inorganic and an organic binder, e.g. polycarboxylate cements containing hydraulic cements other than calcium sulfates
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09KMATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
    • C09K8/00Compositions for drilling of boreholes or wells; Compositions for treating boreholes or wells, e.g. for completion or for remedial operations
    • C09K8/42Compositions for cementing, e.g. for cementing casings into boreholes; Compositions for plugging, e.g. for killing wells
    • C09K8/46Compositions for cementing, e.g. for cementing casings into boreholes; Compositions for plugging, e.g. for killing wells containing inorganic binders, e.g. Portland cement
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02WCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO WASTEWATER TREATMENT OR WASTE MANAGEMENT
    • Y02W30/00Technologies for solid waste management
    • Y02W30/50Reuse, recycling or recovery technologies
    • Y02W30/91Use of waste materials as fillers for mortars or concrete

Definitions

  • the present invention relates to techniques for drilling oil, gas, water, geothermal, or analogous wells. More precisely, the invention relates to cementing compositions which are suitable for cementing zones which are subjected to extreme dynamic stresses.
  • a well which is more than a few hundreds of meters deep is cased, and the annular space between the underground formation and the casing is cemented over all or a portion of its depth.
  • the essential function of cementing is to prevent fluid exchange between the different formation layers through which the hole passes and to control the ingress of fluid into the well, in particular to limit the ingress of water.
  • the casing, the cement and the formation are all perforated over a depth of a few centimeters.
  • the cement positioned in the annular space in an oil well is subjected to a number of stresses throughout the lifetime of the well.
  • the pressure inside the casing can increase or decrease as the fluid filling it changes or as additional pressure is applied to the well, such as when the drilling fluid is replaced by a completion fluid or by a fluid used in a stimulation operation.
  • a change of temperature also creates stress in the cement, at least during the transition period before the temperatures of the steel and the cement come into equilibrium. In the majority of the above cases, the stressing process is sufficiently slow to enable it to be treated as a static process.
  • Perforating does not just cause an over-pressure of a few hundred bars inside the well which dissipates in the form of a shock wave.
  • perforating creates a shock when the projectile penetrates the cement and that shock subjects the zone surrounding the hole to large forces extending over a length of a few meters.
  • the present invention aims to provide novel formulations, in particular for cementing regions in oil or analogous wells which are subjected to extreme dynamic stresses such as perforation zones and junctions for branches of a sidetrack.
  • Young's modulus is known to characterize the flexibility of a material.
  • materials should be selected that have a low Young's modulus, in other words materials that are highly flexible.
  • the aim of the present invention is to provide lighter oilwell cements reinforced with recycled rubber.
  • the ground rubber particles reduce the density of the slurry and thus, secondarily, affect the flexibility of the system; primarily, the rubber particles do not improve the mechanical properties of the cements.
  • the present invention aims to provide a slurry with a density not exceeding 1.70 g/cm 3 and which can, for example, be as low as 1.44 g/cm 3 .
  • the invention consists in preparing a low density slurry by replacing a portion of the mixing water with rubber particles of a density (1.2 g/cm 3 ) which is close to that of water.
  • a cement is produced with low permeability and with improved impact strength.
  • the rubber particles also impart flexibility to the system by reducing its Young's modulus.
  • the cement slurries of the invention are essentially constituted by cement, water, and between 30% and 100% (by weight of cement) of rubber particles obtained, for example, by grinding recycled automobile tires, with grain sizes in the 40-60 mesh range.
  • the rubber particles used originate from recycled tires from the automobile industry. They are obtained by grinding or low temperature disintegration of tires. Particles with a diameter in the range 250 ⁇ m to 400 ⁇ m are particularly preferred. Such grain sizes produce pumpable slurries with suitable rheology.
  • the formulations of the invention are preferably based on class A, B, C, G, and H Portland cements as defined in section 10 of the American Petroleum Institute (API) standards.
  • Class G Portland cements are particularly preferred, but other cements which are known in the art can also be put to profitable use.
  • aluminous cements are particularly suitable, also Portland/plaster mixtures for low temperature wells (deep water wells, for example), or cement silica mixtures (for wells where the temperature exceeds 120°C, for example).
  • the water used to constitute the slurries is preferably low mineral water such as tap water.
  • Other water, such as sea water, can optionally be used, but it is not generally preferred.
  • compositions of the invention can also comprise additives which are routinely used in the majority of cementing compositions, for example dispersing agents, antifoam agents, suspension agents, cement retarders or accelerating agents, and fluid loss control agents.
  • the cementing compositions are also reinforced by adding cast amorphous metal fibers.
  • Cast amorphous metal fibers are known, for example, from US-A-4 520 859 and are obtained by casting a thin ribbon of molten metal onto a cold drum. Rapid cooling prevents crystallization, and the metal solidifies in the form of an amorphous material.
  • the length of the fibers used - or, more exactly, the strips - is typically of the order of ten rnillimeters, preferably in the range 5 to 15 mm.
  • the cast amorphous metal fibers are added to the cement slurry of the invention in an amount of 1% to 25% by weight of fibers relative to the weight of cement, i.e., typically with fiber concentrations of the order of 50 kg/m 3 to 200 kg/m 3 .
  • Adding cast amorphous metal fibers can advantageously compensate for the reduction in compressive strength which results from adding rubber particles, while increasing the modulus of rupture in bending and the ratio of that modulus over Young's modulus.
  • the cement slurries were composed of class G Portland Dyckerhoff North cement, recycled rubber particles, water, and a dispersing agent.
  • the formulations are given in Table 1; they were all studied at the same temperature (170°F, i.e., 76.7°C).
  • the dispersing agent was a polynaphthalene sulfonate, in liquid form.
  • ppg is an abbreviation for "pounds per gallon'
  • the rheology of the cement slurry and the free water were measured using the procedure recommended in API 10. The rheology was measured immediately after mixing at laboratory room temperature, and the rheology was measured after 20 minutes of conditioning at temperature. The results are shown in Table 2. PV means plastic viscosity and TY means yield point.
  • the bending tests were carried out on 3 cm x 3 cm x 12 cm prisms obtained from cement slurries kept at 76.7°C and 20.68 MPa (3000 psi) for 3 days.
  • the compression tests were carried out on cubes with 5 cm sides (2 inches) obtained after 3 days at 76.7°C and 20.68 MPa.
  • the principle of the porosity measurement was as follows. 12.7 mm (Vi inch) diameter cylinders 1 cm in length were cut from the hardened cement set under temperature and pressure. They were dried for about two weeks in a lyophilizer and during this time their weight loss was studied as a function of time. When the samples were dry (corresponding to a constant weight over time), their real volume or skeleton volume Vs was measured using a helium pycnometer; the average volume Vb was obtained from the external dimensions of the cylinder. The difference between the two volumes (Vb - Vs) gave the void volume and thus the porosity ⁇ of the material accessible to the helium.
  • the porosity ⁇ of the slurry was the % by volume of the water and liquid additives in the formulation. For each formulation, a percentage volume for rubber was calculated and the effective porosity ⁇ was defined as the sum of the porosity of the material plus the percentage volume of the rubber. The results are shown in
  • Figures 2 and 3 show how Young's modulus in bending and modulus of rupture in bending vary as a function of effective porosity; it can be seen that Young's modulus decreases almost linearly as a function of effective porosity with a saturation threshold after 70% porosity ( Figure 2). The same comment applies to modulus of rupture in bending ( Figure 3).
  • ground rubber particles can reduce slurry density and thus, secondarily, affect the flexibility of the system. Primarily, rubber particles do not improve the mechanical properties of the cements.
  • the cement slurries were composed of class G Portland Dyckerhoff North cement, recycled rubber particles, water and different additives (anti-foaming agent and retarder; the retarder was different depending on the temperature).
  • Table 5 lists the formulations.
  • Formulations 1 and 7 contained no rubber particles.
  • Formulations 2 to 5 comprised 40 mesh rubber identical to that of the preceding example.
  • Formulation 6 used a 45 mesh rubber available from Vredenstein Rubber Resources, Maastricht, Netherlands reference ECORR RNM 45, density 1.2 g/cm 3 .
  • the influence of parameters such as slurry density and the optimization temperature were studied. For temperatures of 120°C or more, silica flour was used for retrocession strength problems. It is important to dry blend the rubber particles with the cement. Otherwise, poor incorporation or migration of the rubber to the surface after mixing is observed.
  • Formulation D with the new source of rubber was not API mixable, and a portion of the rubber remained on the surface. This phenomenon persisted even if, for example, the added concentration of dispersing agent (a polynaphthalene sulfate) was multiplied by 2
  • EXAMPLE 4 The bending and compression mechanical properties of a cement slurry containing recycled and ground rubber particles were measured. The exact formulations are given in Example 1. Further, by way of comparison with the preceding formulations, a NET was added (formulation 8) with a density of 1.89 g/cm 3 with 4.01 1/m 3 of anti-foaming agent as the only additive and containing no rubber particles.
  • the porosity of the hardened material was measured for different formulations of cement slurry.
  • the principle of measuring the porosity of the material was defined in Example 1
  • the porosity results are shown in Table 8. As expected, they show that adding rubber particles reduced the porosity ⁇ of the final material (comparing formulation 1 with formulation 2, for example). As in Example 1, it was observed that Young's modulus in bending decreased almost linearly as a function of effective porosity with a saturation threshold after 70%
  • Example 1 ground rubber particles reduce the density of the slurry and thus secondarily affect the flexibility of the system; primarily, the rubber particles do not improve the mechanical properties of the cements.
  • a base slurry with a density of 14 ppg was composed of Portland cement, rubber particles and water (formulation 2 in the preceding examples).
  • amorphous metal casting fibers or strips were added, available under the trade mark Fibraflex 5 mm from SEVA, Chalon-sur-Sa ⁇ ne, France. Different concentrations of fibers were studied.
  • Figure 6 is a graph of displacement as a function of the load exerted during the bending test. No increase in load was observed between the cement with no rubber particles and the cement with ground rubber particles. With rubber particles, however, the post rupture behavior was very different from a cement containing no rubber particles. Its tenacity was improved with ground rubber particles, and this post rupture behavior was still further improved with a mixture of rubber and fibers. Tenacity is an important parameter in a multi-sidetrack well.
  • the moist sample was placed in a Hassler type cell which applied a confinement pressure of 10 to 100 bars to the sample.
  • a small constant flow of water (in the range 0.010 ml/min to 0.80 ml/min) was sent through the sample using a chromatographic pump.
  • the differential pressure on the sample sides was measured and recorded. The value recorded was that corresponding to equilibrium.
  • the cement with no rubber particles behaved as a fragile material and the energy absorbed by the sample was estimated to be less than 10 Joules.
  • the energy absorbed by cements formulated with rubber particles was much higher, as shown in Table 11.
  • EXAMPLE 8 The linear expansion of cement slurries during setting at a temperature simulating well conditions was measured in an annular expansion mold.
  • This mold consisted of two flat disks placed on either side of an extensible ring which had two pins at its extremities; the ensemble constituted a 100 mm diameter cylinder of low thickness (22 mm). The two disks were fixed together with screws.
  • the cement slurry to be studied was poured into the mold, and the mold was placed in a thermostatted water bath at 76.76°C. The slurry remained in contact with the water throughout the test.
  • L (D2-Dl) x 10.95
  • L is expressed as a percentage
  • Dl is the micrometric measurement in inches before the onset of hardening
  • D2 is the micrometric measurement in inches after hardening
  • 10.95 is a constant which takes the mold geometry into account.
  • EXAMPLE 9 A mixability and pumpability test was carried out using a slurry with formulation 2, with a density of 1.67 g/cm 3 containing 31% bwoc of rubber particles.
  • the rubber was dry blended with the cement and then added to the tank containing the mixing -.water.
  • the mixture obtained was homogeneous, and circulated with a Triplex type pump routinely used in oil fields with no problems.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Ceramic Engineering (AREA)
  • Materials Engineering (AREA)
  • Organic Chemistry (AREA)
  • Inorganic Chemistry (AREA)
  • Structural Engineering (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Civil Engineering (AREA)
  • Environmental & Geological Engineering (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Curing Cements, Concrete, And Artificial Stone (AREA)
  • Detergent Compositions (AREA)
  • Soil Conditioners And Soil-Stabilizing Materials (AREA)
  • Braking Arrangements (AREA)
  • Manufacture Of Porous Articles, And Recovery And Treatment Of Waste Products (AREA)
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  • Physical Or Chemical Processes And Apparatus (AREA)
PCT/EP1999/007789 1998-10-06 1999-10-04 Cementing compositions and the use of such compositions for cementing oil wells or the like WO2000020350A1 (en)

Priority Applications (8)

Application Number Priority Date Filing Date Title
JP2000574473A JP4017823B2 (ja) 1998-10-06 1999-10-04 油井等をセメント化するセメンティング組成物およびそのような組成物の使用
AU64725/99A AU6472599A (en) 1998-10-06 1999-10-04 Cementing compositions and the use of such compositions for cementing oil wells or the like
AT99952578T ATE228104T1 (de) 1998-10-06 1999-10-04 Zementzusammensetzungen und ihre verwendung in öl-oder ähnlichen bohrlöchern
DE69904076T DE69904076D1 (de) 1998-10-06 1999-10-04 Zementzusammensetzungen und ihre verwendung in öl- oder ähnlichen bohrlöchern
CA 2346169 CA2346169C (en) 1998-10-06 1999-10-04 Cementing compositions and the use of such compositions for cementing oil wells or the like
EP19990952578 EP1129047B1 (en) 1998-10-06 1999-10-04 Cementing compositions and the use of such compositions for cementing oil wells or the like
NO20011688A NO324622B1 (no) 1998-10-06 2001-04-04 Sementsammensetninger og bruk av slike sammensetninger for sementering av oljebronner og lignende
US10/621,083 US6907929B2 (en) 1998-10-06 2003-07-17 Cementing compositions and the use of such compositions for cementing wells

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
FR98/12538 1998-10-06
FR9812538A FR2784095B1 (fr) 1998-10-06 1998-10-06 Compositions de cimentation et application de ces compositions pour la cimentation des puits petroliers ou analogues

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WO2000020350A1 true WO2000020350A1 (en) 2000-04-13

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US (1) US6907929B2 (no)
EP (1) EP1129047B1 (no)
JP (1) JP4017823B2 (no)
CN (1) CN1103752C (no)
AT (1) ATE228104T1 (no)
AU (1) AU6472599A (no)
CA (1) CA2346169C (no)
DE (1) DE69904076D1 (no)
FR (1) FR2784095B1 (no)
ID (1) ID29045A (no)
NO (1) NO324622B1 (no)
WO (1) WO2000020350A1 (no)

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AU6472599A (en) 2000-04-26
EP1129047B1 (en) 2002-11-20
FR2784095A1 (fr) 2000-04-07
US20040007360A1 (en) 2004-01-15
NO20011688L (no) 2001-06-05
CA2346169C (en) 2010-08-10
JP4017823B2 (ja) 2007-12-05
CA2346169A1 (en) 2000-04-13
CN1326428A (zh) 2001-12-12
NO20011688D0 (no) 2001-04-04
EP1129047A1 (en) 2001-09-05
ATE228104T1 (de) 2002-12-15
DE69904076D1 (de) 2003-01-02
FR2784095B1 (fr) 2001-09-21
US6907929B2 (en) 2005-06-21
ID29045A (id) 2001-07-26
NO324622B1 (no) 2007-11-26
JP2002526604A (ja) 2002-08-20
CN1103752C (zh) 2003-03-26

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